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Selecting Materialized Views for RDF Data

机译:为RDF数据选择物化视图

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In the design of a relational database, the administrator has to decide, given a fixed or estimated workload, which indexes should be created. This so called index selection problem is an non-trivial optimization problem in relational databases. In this paper we describe a novel approach for index selection on RDF data sets. We propose an algorithm to automatically suggest a set of indexes as materialized views based on a workload of SPARQL queries. The selected set of indexes aims to decrease the cost of the workload. We provide a cost model to estimate the potential impact of candidate indexes on query performance and an algorithm to select an optimal set of indexes. This algorithm may be integrated into an existing SPARQL query engine. We experimentally evaluate our approach on a standard query processor. We claim that our approach is the first comprehensive suggestion for the index selection problem in RDF.
机译:在关系数据库的设计中,管理员必须根据固定或估计的工作负载决定,应创建索引。这所谓的索引选择问题是关系数据库中的非琐碎优化问题。在本文中,我们描述了对RDF数据集的索引选择的新方法。我们提出了一种算法,可以根据SPARQL查询的工作量自动建议一组索引作为物化视图。所选的一组索引旨在降低工作量的成本。我们提供了一种成本模型来估计候选索引对查询性能和算法选择最佳索引的潜在影响。该算法可以集成到现有的SPARQL查询引擎中。我们通过实验评估我们在标准查询处理器上的方法。我们声称我们的方法是RDF中索引选择问题的第一个全面建议。

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